一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Generation of actionable, cancer-specific neoantigens from KRAS(G12C) with adagrasib.
Generation of actionable, cancer-specific neoantigens from KRAS(G12C) with adagrasib.
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理想情况下,有效的癌症免疫治疗应靶向癌症特异性抗原,即仅存在于癌细胞中的抗原。然而,内源性产生的癌症特异性抗原十分有限。HapImmune™技术利用靶向细胞内癌症驱动因子的共价抑制剂,生成癌症特异性新抗原;这些新抗原以药物-肽偶联物的形式由MHC I类分子呈递。
我们此前关于FDA批准的KRAS(G12C)共价抑制剂索托拉西布的研究显示,药物处理后的细胞可产生这类新抗原,并可被靶向药物-肽/MHC复合物的T细胞衔接器杀伤。
因此,该技术能够结合靶向治疗和免疫治疗。本研究考察了该方法能否推广至另一种FDA批准的KRAS(G12C)抑制剂阿达格拉西布;其化学结构和半胱氨酸反应性与索托拉西布存在显著差异。研究开发了可选择性识别由HLA-A*03和A*11呈递的阿达格拉西布-KRAS(G12C)肽的抗体,这些抗体也能交叉识别以相同方式呈递的其他KRAS(G12C)抑制剂。冷冻电镜结构揭示,阿达格拉西布-肽/HLA复合物的识别方式与索托拉西布靶向型HapImmune抗体截然不同。采用双特异性T细胞衔接器形式的抗体,在阿达格拉西布处理后可杀伤耐阿达格拉西布的肺癌细胞。这些结果支持HapImmune方法具有广泛适用性,可生成可用于治疗的癌症特异性新抗原,并为治疗开发提供候选方案。
Effective immune therapy against cancer ideally should target a cancer-specific antigen, an antigen that is present exclusively in cancer cells.
However, there is a paucity of cancer-specific antigens that are endogenously produced. HapImmune™ technology utilizes covalent inhibitors directed to an intracellular cancer driver to create cancer-specific neoantigens in the form of drug-peptide conjugates presented by class I MHC molecules.
Our previous study with sotorasib, an FDA-approved covalent inhibitor of KRAS(G12C), demonstrated that drug-treated cells produce such neoantigens and can be killed by T cell engagers directed against the drug-peptide/MHC complex.
Thus, this technology can unite targeted and immune therapies. In the present study, we examined whether this approach could generalize to another FDA-approved KRAS(G12C) inhibitor, adagrasib, whose chemical structure and cysteine reactivity differ substantially from sotorasib.
We developed antibodies selective to adagrasib-KRAS(G12C) peptides presented by HLA-A*03 and A*11 that also show cross-reactivity to other KRAS(G12C) inhibitors presented in the same manner. Cryoelectron microscopy structures revealed a mode of adagrasib-peptide/HLA recognition distinctly different from that of sotorasib-directed HapImmune antibodies.
The antibodies in a bispecific T cell engager format killed adagrasib-resistant lung cancer cells upon adagrasib treatment. These results support the broad applicability of the HapImmune approach for creating actionable cancer-specific neoantigens and offer candidates for therapeutic development.
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